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Electro-drawn polymer microneedle arrays with controlled shape and dimension

机译:具有受控形状和尺寸的电拉伸聚合物微针阵列

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摘要

Biodegradable polymer microneedles are recognized as a valuable route for transdermal drug delivery as well as for cutaneous treatments. According to the industrial needs, the present trend is to fabricate microneedles through stamp-less techniques. Electro-drawing has been recently proposed as an alternative fast and mild temperature strategy to the stamp based techniques for the fabrication of biodegradable polymer microneedles. However, previously presented electro-drawn microneedles were fabricated by a point-like thermal stimulation, thus, they could not be electro-drawn in parallel and displayed a pedestal at their basis. Here, we present a novel electro-drawing set up and strategy to parallelize the process and to avoid the pedestal at the microneedle basis. The new set-up is based on titanium micro-heaters integrated onto the pyroelectric substrate which is the electric field generator enabling the electro-drawing. The micro-heaters configuration has been chosen starting from numerical simulations to guarantee uniform heating on large areas, in contrast to the local heating by hot tip, allowing the generation of a uniform electric field which is a basic condition for an in parallel fabrication of microneedles. Additionally, thanks to the stronger electric field, it was possible to apply a double step electro-drawing, where the second step is carried out at higher distance in order to avoid microneedle shrinkage while avoiding further growing of the microneedles.
机译:可生物降解的聚合物微针被认为是透皮给药和皮肤治疗的重要途径。根据工业需求,目前的趋势是通过无图章技术制造微针。最近已经提出电拉伸作为基于压模的技术的可替代的快速温和的温度策略,用于制造可生物降解的聚合物微针。然而,先前提出的电拉丝微针是通过点状热刺激制造的,因此,它们不能被并行电拉丝并在其基础上显示出基座。在这里,我们提出了一种新颖的电绘图设置和策略,以使过程并行化并避免在微针基础上产生基座。新的设置基于集成在热电基板上的钛微加热器,热电基板是可进行电拉伸的电场发生器。微型加热器的配置已从数值模拟开始进行选择,以确保在大面积上均匀加热,而不是通过热尖端进行局部加热,从而允许产生均匀电场,这是并行制造微针的基本条件。另外,由于有较强的电场,因此可以应用双步电拉伸,其中第二步以更大的距离进行,以避免微针收缩,同时避免微针进一步生长。

著录项

  • 来源
    《Sensors and Actuators 》 |2018年第2期| 1553-1560| 共8页
  • 作者单位

    Center for Advanced Biomaterials for HealthCare@CRIB, Istituto ltaliano di Tecnologia, largo Barsanti e Matteucci 53, 80125, Naples, Italy;

    Center for Advanced Biomaterials for HealthCare@CRIB, Istituto ltaliano di Tecnologia, largo Barsanti e Matteucci 53, 80125, Naples, Italy;

    Institute for Microelectronics and Microsystems, National Research Council, 111 P. Castellino St., Naples, Italy;

    Institute for Microelectronics and Microsystems, National Research Council, 111 P. Castellino St., Naples, Italy;

    Institute of Applied Sciences and Intelligent System- CNR, Via Campi Flegrei 34, Pozzuoli (NA), Italy;

    Center for Advanced Biomaterials for HealthCare@CRIB, Istituto ltaliano di Tecnologia, largo Barsanti e Matteucci 53, 80125, Naples, Italy;

    Biopox Srl, Salita Arenella 9, Naples, Italy;

    Institute of Applied Sciences and Intelligent System- CNR, Via Campi Flegrei 34, Pozzuoli (NA), Italy;

    Center for Advanced Biomaterials for HealthCare@CRIB, Istituto ltaliano di Tecnologia, largo Barsanti e Matteucci 53, 80125, Naples, Italy;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Polymer microneedles; PLGA; Electro-drawing; Mold free;

    机译:聚合物微针;PLGA;电绘图;无霉菌;

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